Systemic sclerosis (SSc) is an autoimmune disease of unknown etiology characterized by vascular damage, cellular and immunological disorders. The vast majority of patient sera are characterized by the presence of autoantibodies directed against nuclear proteins. The autoantibodies are associated with specific clinical manifestations and thus useful for diagnostic and classification of the disease. One of the major autoantibody groups are the anti-DNA topoisomerase I (anti-topo). They are associated with the diffuse form of the disease which is characterized by extensive cutaneous and visceral fibrosis. Increased extracellular matrix synthesis and deposition by fibroblast result in the development of fibrosis.
Although anti-topo are associated with the worst form of the disease, correlated with the activity and the severity of SSc, their exact role in the pathogenesis of SSc is controversial and still unravelled. On the other hand, there is now strong evidence for active contribution of autoantigens, targeted by autoantibodies, in autoimmune diseases. Indeed, numerous cells have been shown to be influenced by the interaction of autoantigens with their cognate receptors present on their surface. These autoantigens display cytokine-like effects toward their target cell and are called bifunctional autoantigen. Hence,
determination of the exact role of these autoantigens and characterization of their interaction with their target cell may open up research perspectives for the elucidation of
the potential pathogenic role of their autoantibodies.
In our study, we demonstrated that topo activates intracellular signaling pathways leading to the stimulation of fibroblast migration. We undertook experiments to characterize the interaction of the autoantigen topo with fibroblasts responsible of these cellular effects. Our results strongly suggest a direct interaction of topo with CCR7, a chemokine receptor, present on the surface of fibroblasts.
Heparan sulfate proteoglycans (HSPG), abundantly present on fibroblast surfaces, were found to act as coreceptors for topo binding. Previous work has demonstrated that once bound to fibroblast surfaces, topo recruits anti-topo autoantibodies, which subsequently lead to adhesion and activation of monocytes. Here, we demonstrated that anti-topo autoantibodies from SSc sera lead to the amplification of topo binding to HSPG on fibroblast surfaces. The binding of topo/anti-topo IC could mediate the initiation and maintenance of an inflammatory cascade and further fibrosis development.
Hence, perturbing the binding of topo/anti-topo immune complexes to HSPG became an interesting therapeutic approach. Heparin and low molecular weight heparins were found to prevent the binding of topo and topo/anti-topo immune complexes to the fibroblast surfaces. Moreover, topo/anti-topo immune complexes could be dissociated from fibroblast surfaces by these molecules. Hence, the prevention of topo/anti-topo immune complexes binding to HS chains could result in the absence of the inflammatory cascade initiation.
Overall, our results support an active role for topo as a bifunctional autoantigen toward fibroblasts and a pathogenic role for anti-topo autoantibodies in SSc. Finally, a potential therapeutic approach is proposed which could target inflammatory and fibrotic
development characteristic of SSc.